Braiding Topology of Non-Hermitian Open-Boundary Bands

Fuente: arXiv
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Main Authors: Fu, Yongxu, Zhang, Yi
Format: Preprint
Published: 2024
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author Fu, Yongxu
Zhang, Yi
author_facet Fu, Yongxu
Zhang, Yi
contents There has been much recent interest and progress on topological structures of the non-Hermitian Bloch bands. Here, we study the topological structures of non-Bloch bands of non-Hermitian multiband quantum systems under open boundary conditions, which has received limited attention in prior studies. Using a continuity criterion and an efficient sub-generalized Brillouin zone (sub-GBZ) algorithm, we establish a homotopic characterization -- braiding topology, e.g., characterized by the band's total vorticity -- for open-boundary bands and sub-GBZs. Such topological identification is robust without topological transition and emergent degenerate points, such as exceptional points. We further analyze the transition's impact on bands and spectral flows, including interesting properties unique to open boundaries, and numerically demonstrate our conclusions with tight-binding model examples. We unveil a crucial insight that open-boundary bands interchange their portions after encountering certain exceptional points. Our results enrich the foundational understanding of topological characterizations for generic non-Hermitian quantum systems.
format Preprint
id arxiv_https___arxiv_org_abs_2405_11832
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Braiding Topology of Non-Hermitian Open-Boundary Bands
Fu, Yongxu
Zhang, Yi
Mesoscale and Nanoscale Physics
There has been much recent interest and progress on topological structures of the non-Hermitian Bloch bands. Here, we study the topological structures of non-Bloch bands of non-Hermitian multiband quantum systems under open boundary conditions, which has received limited attention in prior studies. Using a continuity criterion and an efficient sub-generalized Brillouin zone (sub-GBZ) algorithm, we establish a homotopic characterization -- braiding topology, e.g., characterized by the band's total vorticity -- for open-boundary bands and sub-GBZs. Such topological identification is robust without topological transition and emergent degenerate points, such as exceptional points. We further analyze the transition's impact on bands and spectral flows, including interesting properties unique to open boundaries, and numerically demonstrate our conclusions with tight-binding model examples. We unveil a crucial insight that open-boundary bands interchange their portions after encountering certain exceptional points. Our results enrich the foundational understanding of topological characterizations for generic non-Hermitian quantum systems.
title Braiding Topology of Non-Hermitian Open-Boundary Bands
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2405.11832